Multi-angle adjustable thermal imager support

CN224772462UActive Publication Date: 2026-09-18EGING PHOTOVOLTAIC TECHNOLOGY CO LTD
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Patent Information

Application Number
CN202522251489.6
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-10-24
Publication Date
2026-09-18
Estimated Expiration
2035-10-24

AI Technical Summary

Technical Problem

[0003]本实用新型要解决的技术问题是:为了克服现有技术中热像仪支架通常结构简单,调节能力有限,大多仅支持单一方向的移动或手动调节,难以实现精确的多角度定位,支架仅提供水平或垂直移动,而旋转调节往往依赖手动操作,效率低且精度差的问题,提供一种多角度调节的热像仪支架

Benefits of technology

[0012]The beneficial effects of this utility model are: This utility model provides a multi-angle adjustable thermal imager bracket, which allows the thermal imager to move independently or collaboratively in the horizontal, vertical and rotational directions, covering a wider monitoring range and avoiding blind spots. Through the initial angle adjustment component, the initial angle of the thermal imager can be quickly set and reliably locked, adapting to different installation environments.

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Abstract

The utility model relates to thermal imager installation technical field especially is related to a kind of multi-angle adjusting thermal imager support, including pedestal, vertical moving assembly, horizontal moving assembly, rotating assembly, initial angle adjusting assembly and thermal imager body, pedestal is used to be connected with installation position, horizontal moving assembly and pedestal fixed connection, the moving end transmission connection of vertical moving assembly and horizontal moving assembly, the moving end of vertical moving assembly and rotating assembly transmission connection, vertical moving assembly is used for the vertical moving transmission connection of thermal imager body, initial angle adjusting assembly is arranged on the rotating end of rotating assembly, the adjusting end of initial angle adjusting assembly and thermal imager body transmission connection, thermal imager can be independently or cooperatively moved in horizontal, vertical and rotating direction, cover wider monitoring range, avoid blind area, by initial angle adjusting assembly, the initial angle of thermal imager can be quickly set and reliably locked, adapt to different installation environment.
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Description

Technical Field

[0001] This utility model relates to the field of thermal imager installation technology, and in particular to a multi-angle adjustable thermal imager bracket. Background Technology

[0002] Thermal imagers are widely used in the field of solar cell inspection for real-time monitoring of temperature distribution. In complex environments, thermal imagers need to capture images from different angles to obtain comprehensive temperature data. Existing thermal imager brackets are typically simple in structure and have limited adjustment capabilities, mostly supporting only unidirectional movement or manual adjustment. They struggle to achieve precise multi-angle positioning, offering only horizontal or vertical movement, while rotational adjustments often rely on manual operation, resulting in low efficiency and poor accuracy. Furthermore, the lack of a convenient locking mechanism for initial angle adjustments makes the thermal imager prone to shifting in vibrating environments, affecting monitoring stability. Utility Model Content

[0003] The technical problem to be solved by this utility model is: in order to overcome the problems that the thermal imager brackets in the prior art are usually simple in structure, have limited adjustment capabilities, mostly only support movement in one direction or manual adjustment, and are difficult to achieve accurate multi-angle positioning, and the brackets only provide horizontal or vertical movement, while rotation adjustment often depends on manual operation, which is inefficient and has poor accuracy, a multi-angle adjustable thermal imager bracket is provided.

[0004] The technical solution adopted by this utility model to solve its technical problem is: a multi-angle adjustable thermal imager bracket, including a base, a vertical movement component, a horizontal movement component, a rotation component, an initial angle adjustment component, and a thermal imager body. The base is used to connect to the installation position. The lateral movement component is fixedly connected to the base and provides power for the lateral movement of the thermal imager body. The vertical movement component is driven to the moving end of the lateral movement component. The moving end of the vertical movement component is driven to the rotating component and provides power for the vertical movement of the thermal imager body. The initial angle adjustment component is arranged on the rotating end of the rotating component and is driven to the thermal imager body. The initial angle adjustment component is used to adjust the initial angle of the thermal imager body. The thermal imager can move independently or collaboratively in the lateral, vertical, and rotational directions, covering a wider monitoring range and avoiding blind spots. The initial angle of the thermal imager can be quickly set and reliably locked through the initial angle adjustment component, adapting to different installation environments.

[0005] It further includes a rotating component as a rotary table.

[0006] To address the issue of fine-tuning and fixing the initial angle of the thermal imager, the system further includes an initial angle adjustment assembly comprising a mounting base and a locking element. The thermal imager body is fixedly connected to the mounting base, and the mounting base is rotatably connected to the rotary table. The rotary table has several fixing holes spaced circumferentially on its rotating base, and the locking element is threaded through the mounting base and the fixing holes.

[0007] To address the issue of achieving precise control and stability of vertical movement, the system further includes a vertical movement assembly comprising a vertical support, a vertical lead screw, a vertical moving seat, a vertical motor, a vertical guide column, and a vertical support base. The vertical support and the moving end of the lateral movement assembly are connected by a transmission connection; the vertical motor and the vertical support are fixedly connected; the vertical lead screw and the vertical support are rotatably connected; the output end of the vertical motor and the vertical lead screw are connected by a transmission connection; the vertical lead screw and the vertical moving seat are threadedly connected; the vertical moving seat and the rotating assembly are fixedly connected; the vertical guide column and the vertical support are fixedly connected; the vertical support base and the vertical guide column are slidably connected; and the vertical support base and the rotating assembly are fixedly connected.

[0008] To address the issue of improving the connection stability between the vertical moving component and the base, a sliding connection between the vertical moving component and the base is further included.

[0009] To address the issue of how to specifically implement the sliding connection and ensure accurate movement direction, a vertical moving component is further included, comprising a slider and a matching slide rail. The slide rail and base are fixedly connected, the slide rail and slider are slidably connected, the slider and vertical support are fixedly connected, and the extension direction of the slide rail is the transmission direction of the lateral moving component.

[0010] To address the challenges of achieving precise control and load support for lateral movement, the system further includes a lateral movement assembly comprising a lateral support, a lateral lead screw, a lateral movement seat, a lateral motor, a lateral guide post, and a lateral support base. The lateral support and base are fixedly connected, the lateral motor and lateral support are fixedly connected, the lateral lead screw and lateral support are rotatably connected, the output end of the lateral motor and the lateral lead screw are drive-connected, the lateral lead screw and lateral movement seat are threadedly connected, the vertical movement seat and vertical movement assembly are fixedly connected, the lateral guide post and lateral support are fixedly connected, the lateral support base and lateral guide post are slidably connected, and the lateral support base and lateral support are fixedly connected.

[0011] To address the issue of ensuring the support strength of the lateral moving components and preventing deformation, a further method is included: connecting the lateral support and the base via support columns.

[0012] The beneficial effects of this utility model are: This utility model provides a multi-angle adjustable thermal imager bracket, which allows the thermal imager to move independently or collaboratively in the horizontal, vertical and rotational directions, covering a wider monitoring range and avoiding blind spots. Through the initial angle adjustment component, the initial angle of the thermal imager can be quickly set and reliably locked, adapting to different installation environments. Attached Figure Description

[0013] The present invention will be further described below with reference to the accompanying drawings and embodiments.

[0014] Figure 1 This is a schematic diagram of the structure of this utility model; Figure 2 This is a partially enlarged structural diagram of the rotating component in this utility model.

[0015] In the diagram: 1. Base; 2. Vertical moving assembly; 21. Vertical support; 22. Vertical lead screw; 23. Vertical moving seat; 24. Vertical motor; 25. Vertical guide column; 26. Vertical support seat; 27. Slider; 28. Slide rail; 3. Lateral moving assembly; 31. Lateral support; 32. Lateral lead screw; 33. Lateral moving seat; 34. Lateral motor; 35. Lateral guide column; 36. Lateral support seat; 37. Support column; 4. Rotation assembly; 5. Initial angle adjustment assembly; 51. Mounting base; 52. Locking element; 53. Fixing hole; 6. Thermal imager body. Detailed Implementation

[0016] The present invention will now be described in further detail with reference to the accompanying drawings. These drawings are simplified schematic diagrams, illustrating only the basic structure of the present invention, and therefore only show the components relevant to the present invention.

[0017] like Figure 1 This is a schematic diagram of the structure of this utility model, a multi-angle adjustable thermal imager bracket, including a base 1, a vertical movement component 2, a horizontal movement component 3, a rotation component 4, an initial angle adjustment component 5, and a thermal imager body 6. The base 1 is used to connect to the installation position. The lateral movement component 3 is fixedly connected to the base 1. The lateral movement component 3 provides power for the lateral movement of the thermal imager body 6. The vertical movement component 2 is driven to the moving end of the lateral movement component 3. The moving end of the vertical movement component 2 is driven to the rotating component 4. The vertical movement component 2 is driven to the vertical movement of the thermal imager body 6. The initial angle adjustment component 5 is arranged on the rotating end of the rotating component 4. The adjustment end of the initial angle adjustment component 5 is driven to the thermal imager body 6. The initial angle adjustment component 5 is used to adjust the initial angle of the thermal imager body 6. Through the synergistic effect of the base 1, the vertical movement component 2, the lateral movement component 3, the rotating component 4, and the initial angle adjustment component 5, multi-angle and automated adjustment capabilities are provided, enhancing the adaptability and monitoring accuracy of the thermal imager.

[0018] like Figure 1 , 2 As shown, the rotating component 4 is a rotating worktable. By using the rotating worktable as the rotating component 4, the thermal imager can be rotated smoothly. The structure is simple and easy to control.

[0019] like Figure 1 , 2 As shown, the initial angle adjustment assembly 5 includes a mounting base 51 and a locking element 52. The thermal imager body 6 is fixedly connected to the mounting base 51, and the mounting base 51 is rotatably connected to the rotary table. The rotary table has a plurality of fixing holes 53 spaced apart along its circumference on its rotating base 1. The locking element 52 passes through the mounting base 51 and the fixing holes 53 and is threadedly connected. By cooperating with the fixing holes, the mounting base 51 and the locking element 52 allow for quick angle adjustment and secure locking, which improves the convenience and stability of the initial angle setting. The locking element 52 can be a bolt.

[0020] like Figure 1 , 2 As shown, the vertical moving assembly 2 includes a vertical support 21, a vertical lead screw 22, a vertical moving seat 23, a vertical motor 24, a vertical guide column 25, and a vertical support seat 26. The vertical support 21 is driven to the moving end of the horizontal moving assembly 3. The vertical motor 24 is fixedly connected to the vertical support 21. The vertical lead screw 22 is rotatably connected to the vertical support 21. The output end of the vertical motor 24 is driven to the vertical lead screw 22. The vertical lead screw 22 is threaded to the vertical moving seat 23. The vertical moving seat 23 is fixedly connected to the rotating assembly 4. The vertical guide column 25 is fixedly connected to the vertical support 21. The vertical support seat 26 is slidably connected to the vertical guide column 25. The vertical support seat 26 is fixedly connected to the rotating assembly 4. The use of the vertical lead screw 22 transmission structure and the vertical guide column 25 connection structure ensures the accuracy and stability of vertical movement and reduces shaking.

[0021] like Figure 1 , 2As shown, the vertical moving component 2 and the base 1 are slidably connected. The vertical moving component 2 includes a slider 27 and a slide rail 28 that matches the slider 27. The slide rail 28 is fixedly connected to the base 1, the slide rail 28 is slidably connected to the slider 27, and the slider 27 is fixedly connected to the vertical support 21. The extension direction of the slide rail 28 is the transmission direction of the lateral moving component 3. The cooperation between the slider 27 and the slide rail 28 provides a reliable sliding mechanism, enabling the vertical moving component 2 to slide smoothly along the lateral moving direction and reducing wear.

[0022] like Figure 1 , 2 As shown, the lateral movement assembly 3 includes a lateral support 31, a lateral lead screw 32, a lateral movement seat 33, a lateral motor 34, a lateral guide post 35, and a lateral support seat 36. The lateral support 31 is fixedly connected to the base 1, the lateral motor 34 is fixedly connected to the lateral support 31, the lateral lead screw 32 is rotatably connected to the lateral support 31, the output end of the lateral motor 34 is drively connected to the lateral lead screw 32, the lateral lead screw 32 is threadedly connected to the lateral movement seat 33, the vertical movement seat 23 is fixedly connected to the vertical movement assembly 2, the lateral guide post 35 is fixedly connected to the lateral support 31, the lateral support seat 36 is slidably connected to the lateral guide post 35, and the lateral support seat 36 is fixedly connected to the lateral support 31.

[0023] like Figure 1 , 2 As shown, the transverse support 31 and the base 1 are connected by a support column 37, which improves the bending strength and durability of the structure.

[0024] Working process: Fix the base 1 in the required installation position. The horizontal motor 34 drives the horizontal lead screw 32 to rotate, which drives the horizontal moving seat 33 to move along the horizontal guide post 35. Thus, the horizontal position of the thermal imager body 6 is adjusted through the vertical moving component 2. The vertical motor 24 drives the vertical lead screw 22 to rotate, which drives the vertical moving seat 23 to move along the vertical guide post 25. Thus, the vertical position of the thermal imager body 6 is adjusted through the rotating component 4. The rotating component 4 (such as a rotating worktable) drives the initial angle adjustment component 5 and the thermal imager body 6 to rotate, changing the orientation of the thermal imager. Loosen the locking piece 52, adjust the angle of the mounting base 51 relative to the rotating component 4, select a suitable fixing hole 53 and lock it to set the initial angle of the thermal imager body 6. By controlling each component, the thermal imager can achieve multi-angle positioning in three-dimensional space to meet complex monitoring needs.

[0025] Based on the above-described preferred embodiments of this utility model, and through the foregoing description, those skilled in the art can make various changes and modifications without departing from the technical concept of this utility model. The technical scope of this utility model is not limited to the contents of the specification, but must be determined according to the scope of the claims.

Claims

1. A multi-angle adjustable thermal imager bracket, characterized in that, It includes a base (1), a vertical movement component (2), a horizontal movement component (3), a rotation component (4), an initial angle adjustment component (5), and a thermal imager body (6). The base (1) is used to connect to the installation position. The lateral movement component (3) is fixedly connected to the base (1). The lateral movement component (3) is used to provide power for the lateral movement of the thermal imager body (6). The vertical movement component (2) is driven to the moving end of the lateral movement component (3). The moving end of the vertical movement component (2) is driven to the rotating component (4). The vertical movement component (2) is used to drive the vertical movement of the thermal imager body (6). The initial angle adjustment component (5) is arranged on the rotating end of the rotating component (4). The adjustment end of the initial angle adjustment component (5) is driven to the thermal imager body (6). The initial angle adjustment component (5) is used to adjust the initial angle of the thermal imager body (6).

2. The multi-angle adjustable thermal imager bracket as described in claim 1, characterized in that: The rotating component (4) is a rotary table.

3. The multi-angle adjustable thermal imager bracket as described in claim 2, characterized in that: The initial angle adjustment assembly (5) includes a mounting base (51) and a locking member (52). The thermal imager body (6) is fixedly connected to the mounting base (51). The mounting base (51) is rotatably connected to the rotary table. The rotary base (1) of the rotary table is provided with a plurality of fixing holes (53) spaced along its circumference. The locking member (52) is threaded through the mounting base (51) and the fixing holes (53).

4. The multi-angle adjustable thermal imager bracket as described in claim 1, characterized in that: The vertical moving assembly (2) includes a vertical support (21), a vertical screw (22), a vertical moving seat (23), a vertical motor (24), a vertical guide column (25), and a vertical support seat (26). The vertical support (21) is connected to the moving end of the horizontal moving assembly (3) via a transmission connection. The vertical motor (24) is fixedly connected to the vertical support (21). The vertical screw (22) is rotatably connected to the vertical support (21). The output end of the vertical motor (24) is connected to the vertical screw (22) via a transmission connection. The vertical screw (22) is threadedly connected to the vertical moving seat (23). The vertical moving seat (23) is fixedly connected to the rotating assembly (4). The vertical guide column (25) is fixedly connected to the vertical support (21). The vertical support seat (26) is slidably connected to the vertical guide column (25). The vertical support seat (26) is fixedly connected to the rotating assembly (4).

5. The multi-angle adjustable thermal imager bracket as described in claim 4, characterized in that: The vertical moving component (2) and the base (1) are slidably connected.

6. The multi-angle adjustable thermal imager bracket as described in claim 5, characterized in that: The vertical moving component (2) includes a slider (27) and a slide rail (28) that matches the slider (27). The slide rail (28) is fixedly connected to the base (1), the slide rail (28) is slidably connected to the slider (27), the slider (27) is fixedly connected to the vertical support (21), and the extension direction of the slide rail (28) is the transmission direction of the lateral moving component (3).

7. A multi-angle adjustable thermal imager support as in claim 4, wherein: The lateral movement assembly (3) includes a lateral support (31), a lateral lead screw (32), a lateral movement seat (33), a lateral motor (34), a lateral guide post (35), and a lateral support seat (36). The lateral support (31) is fixedly connected to the base (1), the lateral motor (34) is fixedly connected to the lateral support (31), the lateral lead screw (32) is rotatably connected to the lateral support (31), the output end of the lateral motor (34) is drivenly connected to the lateral lead screw (32), the lateral lead screw (32) is threadedly connected to the lateral movement seat (33), the vertical movement seat (23) is fixedly connected to the vertical movement assembly (2), the lateral guide post (35) is fixedly connected to the lateral support (31), the lateral support seat (36) is slidably connected to the lateral guide post (35), and the lateral support seat (36) is fixedly connected to the lateral support (31).

8. A multi-angle adjustable thermal imager support as in claim 7, wherein: The transverse support (31) and the base (1) are connected by a support column (37).